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Oct 17, 2016 - The easily isomerized (Z,E)-butadiene linker of vinylogous CA-4 was replaced by a rigid [1,2,4]triazolo[4,3-b]pyridazine scaffold. Twen...
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Letter

Synthesis and Bioevaluation of 3,6-Diaryl[1,2,4]Triazolo[4,3-b]Pyridazines as Antitubulin Agents Qile Xu, Yueting Wang, Jingwen Xu, Maolin Sun, Haiqiu Tian, Daiying Zuo, Qi Guan, Kai Bao, Yingliang Wu, and Weige Zhang ACS Med. Chem. Lett., Just Accepted Manuscript • DOI: 10.1021/acsmedchemlett.6b00252 • Publication Date (Web): 17 Oct 2016 Downloaded from http://pubs.acs.org on October 18, 2016

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ACS Medicinal Chemistry Letters

Synthesis and Bioevaluation of 3,6-Diaryl-[1,2,4]Triazolo[4,3b] Pyridazines as Antitubulin Agents Qile Xu,a Yueting Wang,a Jingwen Xu,b Maolin Sun,a Haiqiu Tian,a Daiying Zuo,b Qi Guan,a Kai Bao,a,c Yingliang Wu,b,* Weige Zhanga,* a

Key Laboratory of Structure-Based Drug Design and Discovery, Ministry of Education, Shenyang Pharmaceutical University, 103 Wenhua Road, Shenhe District, Shenyang 110016, China. b Department of Pharmacology, Shenyang Pharmaceutical University, 103 Wenhua Road, Shenhe District, Shenyang 110016, China. c Gordon Center for Medical Imaging, Division of Nuclear Medicine and Molecular Imaging, Department of Radiology, Massachusetts General Hospital and Harvard Medical School, Boston, MA 02214, USA. KEYWORDS: [1,2,4]Triazolo[4,3-b]pyridazine; Combretastatin A-4; Tubulin; Colchicine binding site; Molecular modelling ABSTRACT: A series of 3,6-diaryl-[1,2,4]triazolo[4,3-b]pyridazines were designed as a class of vinylogous CA-4 analogues. The easily isomerized (Z,E)-butadiene linker of vinylogous CA-4 was replaced by a rigid [1,2,4]triazolo[4,3-b]pyridazine scaffold. Twenty one target compounds were synthesized and exhibited moderate to potent antiproliferative activity. The compound 4q with a 3-amino-4-methoxyphenyl moiety as the B-ring, comparable to CA-4 (IC50 = 0.009-0.012 µM), displayed the highly active antiproliferative activity against SGC-7901, A549 and HT-1080 cell lines with IC50 values of 0.014 µM, 0.008 µM, and 0.012 µM, respectively. Tubulin polymerization experiments indicated that 4q effectively inhibited tubulin polymerization and immunostaining assay revealed that 4q significantly disrupted tubulin microtubule dynamics. Moreover, cell cycle studies revealed that compound 4q dramatically arrested cell cycle progression at G2/M phase in A549 cells. Molecular modeling studies showed that 4q could bind to the colchicine binding site on microtubules.

Tubulin which plays a key role in cell mitosis is one of the most effective molecular targets for anticancer drugs discovery.1,2 Microtubule targeting drugs disrupt tubulin/microtubule dynamics by binding to distinct sites such as taxol, vinca alkaloid and colchicine binding sites and arrests cells during mitosis, leading to cell death.3,4 Combretastatin A-4 (CA-4, 1, Figure 1) is a well known antitubulin agent by binding to the colchicine site.5 In recent years, a wide variety of CA-4 analogues

have been developed for the structure-activity relationships study.6,7 In brief, the existence of the 3,4,5-trimethoxy group on the A-ring and the Z-restricted configuration have been reported as preconditions for effective antiproliferative activity.8 However, the cis-olefin bond of CA-4 easily isomerizes to its inactive transform (E geometry) under light, heat and protic media resulting in a sharp reduction in both antiproliferative and antitubulin activities.9 Therefore, to restrict the com-

Figure 1. Design strategy and structures for the target compounds.

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Scheme 1.

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Reagents and conditions: (a) (1) glyoxylic acid, AcOH, reflux, (2) NH4OH, (3) N2H4·H2O, reflux; (b) POCl3, 100 °C, 2 h; (c) MeOH, H2SO4, reflux; (d) N2H4·H2O, MeOH, reflux; (e) n-butyl alcohol, MW, 120 °C. pounds in the desired Z-restricted configuration, a wide variety of strategies have been designed, particularly by rigidifying the olefin bond with heterocyclic moieties (five-membered and six-membered rings, Figure 1).10-13 Interestingly, when the cis-olefin bridge of CA-4 was replaced by a four carbons (Z,E)-butadiene linker, the resulting vinylogous CA-4 (2, Figure 1) actually retained potent bioactivity.14 Furthermore, vinylogous CA-4 analogue 3 whose B-ring was a phenyl group was discovered to more active than CA-4 in antitubulin activity.14 These dienic analogues of CA-4 also tend to isomerization to the more stable but inactive (E,E)-isomeric derivatives.14,15 Over the years, researchers have been highly interested in compounds containing the [1,2,4]triazolo[4,3-b]pyridazine scaffold, on account of their characteristic chemical structure and various biological properties including anticancer activity.16-19 As part of our search for new antitubulin agents,20-24 we hypothesized that the replacement of the easily isomerized (Z,E)-butadiene linker of vinylogous CA-4 analogues with a rigid [1,2,4]triazolo[4,3-b]pyridazine scaffold could be a successful strategy to unravel a class of antitubulin agents (Figure 1). Thus, a series of 3,6-diaryl-[1,2,4]triazolo[4,3b]pyridazines were synthesized and distinguished into two types. Type I target compounds (4a-q) include a 3,4,5trimethoxyphenyl unit as the A-ring which is an essential component to induce cytotoxicity in the compounds based on CA-4 pharmacophores, while type II target compounds (5a-d) include a 2,3,4-trimethoxy substitutions on the A-ring for comparison (Figure 1).25 To explore the SAR of target compounds, various substitutions with electron-withdrawing (F, Cl, Br, CF3, CN and NO2) and electron-donating (CH3, OCH3, SCH3 and NH2) groups were introduced at different positions of the B-ring. In addition, the most potent compound 4q was selected to investigate its mechanism of activity and the possible binding mode of 4q on tubulin. Target compounds 4a-q and 5a-d were prepared as outlined in Scheme 1. In brief, substituted acetophenones 6 were reacted with glyoxylic acid in acetic acid and then treated with hydrazine to afford the desired pyridazinones 7 in 80-95% yield. Subsequently, pyridazinones 7 were treated with phosphorus oxychloride to afford the key intermediates 8. On the other hand, the substituted benzoic acids 9 were reacted with excess methanol by using concentrated sulfuric acid as catalyst to give the corresponding esters 10 which were further reacted with 80% hydrazine monohydrate in methanol to get hydrazides 11 in 60-90% yield. Finally, intermediates 8 were reacted with hydrazides 11 to afford the desired compounds in nbutyl alcohol under microwave irradiation (150 W, 120 ºC) in the absence of catalysts.17 The nitro-compounds 4g, 4m, 4p

and 5c were reduced by hydrazine hydrate to get corresponding amino-compounds 4h, 4n, 4q and 5d.20 To explore the ability of various 3,6-diaryl[1,2,4]triazolo[4,3-b]pyridazines to inhibit cancer cells, the target compounds and reference compounds CA-4 (1) were screened for anti-proliferative activity against gastric adenocarcinoma SGC-7901 cells, lung adenocarcinoma A549 cells and fibrosarcoma HT-1080 cells. As illustrated in Table 1, the majority of these target compounds exhibited moderate to potent antiproliferative activity. When ring-A was a 3,4,5trimethoxyphenyl, a comparison of compounds 4a-j revealed an electronic properties substitution effect at para-substitution of ring-B. The compounds with electron-donating groups such as CH3 (4a), OCH3 (4c), NH2 (4h), SCH3 (4i) on parasubstitution of ring-B gave higher activities than those with electron-withdrawing groups such as CF3 (4b), NO2 (4g), CN (4j) with the exception of compounds 4d-f with para-halogen substituted electron-withdrawing groups (e.g., F, Cl, Br). For example, compound 4e with a chlorine substituent on parasubstitution of ring-B displayed potent antiproliferative activity which may be due to chlorine being a relative small and weak electron-withdrawing group in contrast with other electron-withdrawing groups. However, for the electronic effects to meta-substitution of ring-B, only compound 4n with an electron-donating group NH2 exhibited moderate antiproliferative activity (4k-m vs 4n). Futhermore, to explore the effect of disubstitution on the B-ring, methoxyl, fluorine, nitro and amino groups were introduced in the m- and p-positions respectively (4o-q). Interestingly, the compound 4q with a 3amino-4-methoxyphenyl moiety as the B-ring, comparable to CA-4 (IC50 = 0.009-0.012 µM), displayed the highly active antiproliferative activity against SGC-7901, A549 and HT1080 cell lines with IC50 values of 0.014 µM, 0.008 µM, and 0.012 µM, respectively. Moreover, replacement of the 3,4,5trimethoxy-substituted A-ring with 2,3,4-trimethoxysubstituted A-ring (5a-d) induced a reduction in antiproliferative activity of resulting compound (4a vs 5a, 4c vs 5b, 4p vs 5c, 4q vs 5d). Compound 5b showed moderate antiproliferative activity and this result was consistent with the data in the reported literature.19 Table 1. Antiproliferative activity of target compounds 4a-q, 5a-d and CA-4. IC50 (µM) a Comp.

SGC-7901

A549

HT-1080

4a

0.016 ± 0.009

0.023 ± 0.012

0.14 ± 0.07

4b

2.21 ± 0.11

10.4 ± 1.3

1.86 ± 0.22

4c

0.26 ± 0.21

0.051 ± 0.009

0.017 ± 0.011

4d

2.02 ± 0.07

2.18 ± 0.06

0.021 ± 0.010

4e

0.025 ± 0.006

0.051 ± 0.009

0.45 ± 0.03

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1.28 ± 0.03

0.78 ± 0.05

0.15 ± 0.07

4g

2.38 ± 0.05

3.85 ± 0.07

4.94 ± 0.09

4h

1.23 ± 0.09

2.35 ± 0.08

1.62 ± 0.06

4i

0.098 ± 0.012

0.28 ± 0.03

0.073 ± 0.013

4j

30.9 ± 0.5

51.6 ± 0.9

33.5 ± 2.1

4k

63.1 ± 0.7

47.9 ± 1.3

60.5 ± 1.4

4l

59.0 ± 0.9

52.2 ± 1.7

54.5 ± 1.6

4m

86.4 ± 2.3

90.5 ± 3.4

50.0 ± 1.5

4n

0.98 ± 0.06

2.98 ± 0.05

0.39 ± 0.07 1.69 ± 0.03

4o

4.17 ± 0.07

4.23 ± 0.08

4p

2.28 ± 0.01

4.57 ± 0.03

6.85 ± 0.05

4q

0.014 ± 0.002

0.008 ± 0.006

0.012 ± 0.004

5a

4.53 ± 0.06

10.4 ± 0.07

0.17 ± 0.09

5b

0.42 ± 0.06

6.98 ± 0.06

5.57 ± 0.09

5c

9.14 ± 0.07

11.4 ± 1.1

18.2 ± 0.7

5d

0.91 ± 0.09

2.62 ± 0.05

0.92 ± 0.04

CA-4 b

0.012 ± 0.003

0.009 ± 0.002

0.009 ± 0.006

polymerization experiment strongly implicated a direct interaction of 4q with tubulin. To further confim the influence of inhibition of tubulin polymerization in cells, we explored microtubules structure and distribution in cultured A549 cells by using the indirect immunofluorescence assay. A549 cells treated with DMSO showed a normal arrangement and organization throughout the cells (Figure 3). Instead, A549 cells treated with compound 4q and CA-4 (at their respective 2-fold IC50 concentrations) demonstrated a destruction of the tubulin network (Figure 3). In short, the results further confirmed that tubulin was the molecular target for compound 4q.

a

IC50: 50% inhibitory concentration (detemined by standard MTT assay). Each experiment was carried out in triplicate. b Used as a positive control. To investigate whether the antiproliferative activity of these new compounds was due to interaction with tubulin, the highly active compound 4q was evaluated for its inhibition of tubulin polymerization. CA-4 (1) and paclitaxel were employed as positive and negative controls, respectively. As shown in Fig-

Figure 2. Effects of 4q and CA-4 on tubulin polymerization. Tubulin had been incubated with 4q (0.33, 1.1, 3.3 and 10 µM), paclitaxel (5.0 µM), CA-4 (0.5, 1.0, 2.0 and 4.0 µM) or DMSO (vehicle control) at room temperature. Values are the mean ± SD of three different experiments performed in triplicates. ure 2, 4q displayed antitubulin activity with an IC50 value of 1.80 µM, which is less active than that of CA-4 (IC50 = 0.64 µM). Moreover, 4q and CA-4 inhibited tubulin polymerization in a concentration-dependent manner (Figure 2). The tubulin

Figure 3. Effects of 4q (0.016 µM) and CA-4 (0.018 µM) on inhibition of tubulin polymerization in A549 cells by immunofluorescence. The left and middle panels represent the tubulin assembly stained with FITC and DAPI and the right panel represents a merge of the corresponding left and middle panels. To investigate whether the potent compound 4q could arrest cell cycle distribution, the effect of compound 4q on the cell cycle were analyzed by flow cytometry. First, A549 cells were treated with 4q of different concentrations (0.5-, 1-, 2-fold IC50) for 12 h (Figure 4A). On the other hand, A549 cells were treated with 4q or CA-4 (at their 2-fold IC50 concentrations, respectively) for 0, 12, 24 and 48 h respectively (Figure 4B). Cell cycle analysis revealed that 4q caused a significant cell cycle arrest at the G2/M phase in both concentration and time dependent manners. To further understand the possible binding mode of these new compounds with the colchicine binding site of tubulin, molecular modeling study of the most potent compound 4q, CA-4 and vinylogous CA-4 analogue 3 were performed by using CDOCKER protocol in Discovery Studio 3.0 software package (PDB: 1SA0). The docking study (Figure 5A) showed that compound 4q superimposed well with CA-4 and 3 in colchicine binding site, 4q displays a distorted conformation similar to CA-4 and 3, which may be responsible for its bioactivity. For compound 4q, the oxygen atom of the para methoxy group on A-ring formed a hydrogen bond with the thiol group of Cys β241 and the amino nitrogen atom on B-ring formed another hydrogen bond with the sulphur atom of Met β259 (Figure 5B). Additionally, the Ala β250 residue formed a direct hydrogen bond with the [1,2,4]triazolo[4,3-b]pyridazine linker. The docking study and tubulin polymerization assay

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suggested that 4q could bind at the colchicine binding site of tubulin.

Figure 4. (A) 4q caused G2/M phase arrest in a concentration-dependent manner. A549 cells were treated with different concentrations (0.004 µM to 0.016 µM ) of 4q for 12 h, then stained with PI and subjected to flow cytometric analysis. (B) 4q and CA-4 induced G2/M phase arrest in a time-dependent manner. A549 cells were treated with 4q or CA-4 for time 12, 24 and 48 h, then stained with PI and subjected to flow cytometric analysis. In conclusion, we designed and synthesized a set of 3,6-diaryl[1,2,4]triazolo[4,3-b]pyridazines as a new class of vinylogous CA-4 analogues. The structure of these compounds are unique as they involved a rigid [1,2,4]triazolo[4,3-b]pyridazine scaffold as the linker to fix the Z,E-diene configuration of A-ring and B-ring. These target compounds exhibited moderate to potent antiproliferative activity with IC50 values from 0.008 to 90.5 µM. Interestingly, the compound 4q with a 3-amino-4methoxyphenyl moiety as the B-ring, comparable to CA-4 (IC50 = 0.009-0.012 µM), and displayed the highly active antiproliferative activity against SGC-7901, A549 and HT-1080 cell lines with IC50 values of 0.014 µM, 0.008 µM, and 0.012 µM, respectively. The tubulin polymerization assay suggested that 4q effectively inhibited tubulin polymerization and immunofluorescence staining experiment revealed that 4q significantly disrupted tubulin microtubule dynamics. Furthermore, cell cycle analysis studies revealed that compound 4q significantly arrested cell cycle progression at G2/M phase in A549 cells. Additionally, the results of docking study together with other two in vitro tubulin experiments showed that 4q may bind to colchicine binding site of tubulin. Our work not only expands the exploration of the linker modification of tubulin inhibitor CA-4 but also provides a set of rigid analogues of vinylogous CA-4 with potent antiproliferative activity.

ASSOCIATED CONTENT

Figure 5. (A) Possible binding mode of compound 4q (violet), CA-4 (green) and vinylogous CA-4 analogue 3 (yellow) in the colchicine binding site. (B) Overlay of 4q in the binding site. Hydrogen bonds are displayed by green dashed lines (hydrogen bond distance < 3Å).

AUTHOR INFORMATION Corresponding Author

Tel: +86 24 23986422, Fax: +86 24 23986393 (W. Zhang); Tel: +86 24 23986278, Fax: +86 24 23986278 (Y. Wu). E-mail addresses: [email protected] (W. Zhang), [email protected] (Y. Wu). Author Contributions

Q.X., Y.W., J.X., M.S., H.T. and D.Z. performed the experiments. Q.X., Q.G., K.B., Y.W. and W.Z. analyzed and interpreted the data. Q.X., K.B. and W.Z. wrote the paper. Funding Sources

This work was funded by the National Natural Science Foundation of China (81502932) and State Key Laboratory of Natural Medicines and Active Substance (No. GTZK201603)

ACKNOWLEDGMENT

Supporting Information

The Supporting Information is available free of charge on the ACS Publications website. The supporting information includes experimental procedures, data for compounds

We gratefully acknowledge Program for Innovative Research Team of the Ministry of Education and Program for Liaoning Innovative Research Team in University.

REFERENCES

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(1) Jordan, M. A.; Wilson, L. Microtubules as a target for anticancer drugs. Nat. Rev. Cancer 2004, 4, 253–265. (2) Ferrara, R.; Pilotto, S.; Peretti, U.; Caccese, M.; Kinspergher, S.; Carbognin, L.; Karachaliou, N.; Rosell, R.; Tortora, G.; Bria, E. Tubulin inhibitors in non-small cell lung cancer: looking back and forward. Expert Opin. Pharm., published online Mar 10 2016; DOI: 10.1517/14656566.2016.1157581. (3) Rohena, C. C.; Mooberry, S. L. Recent progress with microtubule stabilizers: new compounds, binding modes and cellular activities. Nat. Prod. Rep. 2014, 31, 335–355. (4) Kaur, R.; Kaur, G.; Gill, RK.; Soni, R.; Bariwal, J. Recent developments in tubulin polymerization inhibitors: An overview. Eur. J. Med. Chem. 2014, 87, 89–124. (5) Pettit, G. R.; Singh, S. B.; Hamel, E.; Lin, C. M.; Alberts, D. S.; Garcia-Kendall, D. Isolation and structure of the strong cell growth and tubulin inhibitor combretastatin A-4. Experientia 1989, 45, 209−211. (6) Patil, P. O.; Patil, A. G.; Rane, R. A.; Patil, P. C.; Deshmukh, P. K.; Bari, S. B.; Patil, D. A.; Naphade, S. S. Recent advancement in discovery and development of natural product combretastatin-inspired anticancer agents. Anticancer Agents Med. Chem. 2015, 15, 955–969. (7) Mikstacka, R.; Stefański, T.; Różański, J. Tubulininteractive stilbene derivatives as anticancer agents. Cell Mol. Biol. Lett. 2013, 18, 368–397. (8) Tron, G. C.; Pirali, T.; Sorba, G.; Pagliai, F.; Busacca, S.; Genazzani, A. A. Medicinal chemistry of combretastatin A4: present and future directions. J. Med. Chem. 2006, 49, 3033–3044. (9) Nam, N. H. Combretastatin A-4 analogues as antimitotic antitumor agents. Curr. Med. Chem. 2003, 10, 1697–1722. (10) Lu, Y.; Chen, J.; Xiao, M.; Li, W.; Miller, D. D. An overview of tubulin inhibitors that interact with the colchicine binding site. Pharm. Res. 2012, 29, 2943−2971. (11) Wang, L.; Woods, K. W.; Li, Q.; Barr, K. J.; McCroskey, R. W.; Hannick, S. M.; Gherke, L.; Credo, R. B.; Hui, Y. H.; Marsh, K.; Warner, R.; Lee, J. Y.; Zielinski-Mozng, N.; Frost, D.; Rosenberg, S. H.; Sham, H. L. Potent, orally active heterocycle-based combretastatin A-4 analogues: synthesis, structure-activity relationship, pharmacokinetics, and in vivo antitumor activity evaluation. J. Med. Chem. 2002, 45, 1697–1711. (12) Zheng, S.; Zhong, Q.; Mottamal, M.; Zhang, Q.; Zhang, C.; Lemelle, E.; McFerrin, H.; Wang, G. Design, synthesis, and biological evaluation of novel pyridine-bridged analogues of combretastatin-A4 as anticancer agents. J. Med. Chem. 2014, 57, 3369−3381. (13) Zaninetti, R.; Cortese, S. V.; Aprile, S.; Massarotti, A.; Canonico, P. L.; Sorba, G.; Grosa, G.; Genazzani, A. A.; Pirali, T. A concise synthesis of pyrazole analogues of combretastatin A1 as potent anti-tubulin agents. ChemMedChem. 2013, 8, 633–643. (14) Kaffy, J.; Pontikis, R.; Florent, J. C.; Monneret, C. Synthesis and biological evaluation of vinylogous combretastatin A-4 derivatives. Org. Biomol. Chem. 2005, 3, 2657–2660.

(15) Ty, N.; Kaffy, J.; Arrault, A.; Thoret, S.; Pontikis, R.; Dubois, J.; Morin-Allory, L.; Florent, J. C. Synthesis and biological evaluation of cis-locked vinylogous combretastatin-A4 analogues: derivatives with a cyclopropyl-vinyl or a cyclopropyl-amide bridge. Bioorg. Med. Chem. Lett. 2009, 19, 1318–1322. (16) Guan, L. P.; Sui, X.; Deng, X. Q.; Quan, Y. C.; Quan, Z. S. Synthesis and anticonvulsant activity of a new 6-alkoxy[1,2,4]triazolo[4,3-b]pyridazine. Eur. J. Med. Chem. 2010, 45, 1746–1752. (17) Albright, J. D.; Moran, D. B.; Wright, W. B. Jr.; Collins, J. B.; Beer, B.; Lippa, A. S.; Greenblatt, E. N. Synthesis and anxiolytic activity of 6-(substituted-phenyl)-1,2,4-triazolo[4,3b]pyridazines. J. Med. Chem. 1981, 24, 592–600. (18) Kaur, R.; Dwivedi, A. R.; Kumar, B.; Kumar, V. Recent Developments on 1,2,4-Triazole Nucleus in Anticancer Compounds: A Review. AntiCancer Agents Med. Chem. 2016, 16, 465–489. (19) Cai, S.; Tian, E. Y.; Dong, H.; Yu, Z.; Chen, L.; Wu, L.; Liu, L.; Yin, F. Preparation of 3-aryl-6-aryl-[1,2,4]triazolo[4,3b]pyridazine derivatives as cell proliferation inhibitors. Int. Appl. 2012, WO 2012094966 A1 20120719. (20) Wen, Z.; Xu, J.; Wang, Z.; Qi, H.; Xu, Q.; Bai, Z.; Zhang, Q.; Bao, K.; Wu, Y.; Zhang, W. 3-(3,4,5Trimethoxyphenylselenyl)-1H-indoles and their selenoxides as combretastatin A-4 analogues: microwave-assisted synthesis and biological evaluation. Eur. J. Med. Chem. 2015, 27, 184–194. (21) Xu, Q.; Qi, H.; Sun, M.; Zuo, D.; Jiang, X.; Wen, Z.; Wang, Z.; Wu, Y.; Zhang, W. Synthesis and Biological Evaluation of 3Alkyl-1,5-Diaryl-1H-Pyrazoles as Rigid Analogues of Combretastatin A-4 with Potent Antiproliferative Activity. PLoS ONE, published online Jun 10 2015; DOI: 10.1371/journal.pone.0128710. (22) Wen, Z.; Li, X.; Zuo, D.; Lang, B.; Wu, Y.; Jiang, M.; Ma, H.; Bao, K.; Wu, Y.; Zhang, W. Ultrasound-promoted two-step synthesis of 3-arylselenylindoles and 3-arylthioindoles as novel combretastatin A-4 analogues. Scientific Reports, published online Apr 5 2016; DOI: 10.1038/srep23986. (23) Guan, Q.; Han, C.; Zuo, D.; Zhai, M.; Li, Z.; Zhang, Q.; Zhai, Y.; Jiang, X.; Bao, K.; Wu, Y.; Zhang, W. Synthesis and evaluation of benzimidazole carbamates bearing indole moieties for antiproliferative and antitubulin activities. Eur. J. Med. Chem. 2014, 87, 306−315. (24) Guan, Q.; Yang, F.; Guo, D.; Xu, J.; Jiang, M.; Liu, C.; Bao, K.; Wu, Y.; Zhang, W. Synthesis and biological evaluation of novel 3,4-diaryl-1,2,5-selenadiazol analogues of combretastatin A-4. Eur. J. Med. Chem. 2014, 87, 1−9. (25) Negi, A. S.; Gautam, Y.; Alam. S.; Chanda, D.; Luqman, S.; Sarkar, J.; Khan, F.; Konwar, R. Natural antitubulin agents: Importance of 3,4,5-trimethoxyphenyl fragment. Bioorg. Med. Chem. 2015, 23, 373−389.

Table of Contents

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Figure 1. Design strategy and structures for the target compounds. 164x76mm (300 x 300 DPI)

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Figure 2. Effects of 4q and CA-4 on tubulin polymerization. Tubulin had been incubated with 4q (0.33, 1.1, 3.3 and 10 µM), paclitaxel (5.0 µM), CA-4 (0.5, 1.0, 2.0 and 4.0 µM) or DMSO (vehicle control) at room temperature. Values are the mean ± SD of three different experiments performed in triplicates. 88x103mm (300 x 300 DPI)

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Figure 3. Effects of 4q (0.016 µM) and CA-4 (0.018 µM) on inhibition of tubulin polymerization in A549 cells by immunofluorescence. The left and middle panels represent the tubulin assembly stained with FITC and DAPI and the right panel represents a merge of the corresponding left and middle panels. 74x66mm (300 x 300 DPI)

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ACS Medicinal Chemistry Letters

Figure 4. (A) 4q caused G2/M phase arrest in a concentration-dependent manner. A549 cells were treated with different concentrations (0.004 µM to 0.016 µM ) of 4q for 12 h, then stained with PI and subjected to flow cytometric analysis. (B) 4q and CA-4 induced G2/M phase arrest in a time-dependent manner. A549 cells were treated with 4q or CA-4 for time 12, 24 and 48 h, then stained with PI and subjected to flow cytometric analysis. 122x107mm (300 x 300 DPI)

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ACS Medicinal Chemistry Letters

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Figure 5. (A) Possible binding mode of compound 4q (violet), CA-4 (green) and vinylogous CA-4 analogue 3 (yellow) in the colchicine binding site. 64x56mm (300 x 300 DPI)

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ACS Medicinal Chemistry Letters

(B) Overlay of 4q in the binding site. Hydrogen bonds are displayed by green dashed lines (hydrogen bond distance < 3Å). 64x56mm (300 x 300 DPI)

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ACS Medicinal Chemistry Letters

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Reagents and conditions: (a) (1) glyoxylic acid, AcOH, reflux, (2) NH4OH, (3) N2H4·H2O, reflux; (b) POCl3, 100 °C, 2 h; (c) MeOH, H2SO4, reflux; (d) N2H4·H2O, MeOH, reflux; (e) n-butyl alcohol, MW, 120 °C. 170x55mm (300 x 300 DPI)

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